Modular graphene oxide-based microbial fuel filter and process of making and using same
The present invention relates to a reclamation and recycling process for graphene oxide, a scaffold comprising graphene oxide, a modular graphene oxide-based microbial fluid filter and a filter tool that allows the correct compression pressure of a modular filtration cartridge, and prevents internal leakage along the internal wall of the filter and thus provides correct sealing of the filter. Such modular graphene oxide-based microbial fluid filter does not require a sub-micrometer pore filtering medium, yet has a microbial filtration efficiency of up to 99.99% and the ability to filter particulates while still providing the filtration flow rates of current filters that do not employ a sub-micrometer pore filtering medium.
1 . A fluid filter comprising walls that form a three dimensional housing, said housing comprising:
an interior chamber having an interior surface, at least one inlet passing through at least one of said walls to said interior chamber; and
at least one outlet passing through at least one of said walls to said interior chamber, said A housing's chamber comprising a three dimensional structure comprising graphene oxide, the three dimensional structure having a first plurality of stems protruding radially inwardly from said interior surface towards a center of a void, each said stem of said first plurality of stems having two opposed branches extending circumferentially outward from a respective said stem without intercepting an adjacent stem and without intercepting said interior surface, said two opposed branches being oriented concave inwardly.
2 . The fluid filter according to claim 1 wherein said three dimensional structure comprising graphene oxide is selected from the group consisting of:
a) a three dimensional structure comprising porous graphene oxide, said three dimensional structure comprising porous graphene oxide not comprising a support scaffold; and/or
b) a three dimensional structure comprising graphene oxide, said three dimensional structure comprising graphene oxide comprising a support scaffold comprising an exterior surface and optionally pores having walls said pores passing through said support scaffold, said graphene oxide being attached to at least a portion of said three dimensional structure comprising graphene oxide.
3 . The fluid filter according to claim 1 wherein said three dimensional structure comprising graphene oxide is selected from the group consisting of:
a) a three dimensional structure comprising a graphene oxide cartridge, and/or graphene oxide mesh; and/or
b) a three dimensional structure comprising a support scaffold comprising an exterior surface and pores having walls, said pores passing through said support scaffold, said graphene oxide being attached to at least a portion of said support scaffold.
4 . The fluid filter according to claim 2 wherein said support scaffold comprises a graphene oxide mesh, a bead, a fiber, a tube, a nanotube, nanoparticle all having a graphene oxide attached thereto.
5 . The fluid filter according to claim 1 wherein a filter compression spacer is located between said inlet and said three dimensional structure comprising graphene oxide between said outlet and said three dimensional structure comprising graphene oxide.
6 . The fluid filter according to claim 5 wherein said filter compression spacer is located between said inlet and said three dimensional structure comprising graphene oxide.
7 . The fluid filter according to claim 1 wherein said filter comprises a first filter compression spacer located between said inlet and said three dimensional structure comprising graphene oxide and a second filter compression spacer located between said outlet and said three dimensional structure comprising graphene oxide.
8 . The fluid filter according to claim 1 , said filter comprising three or more filter compression spacers, at least one filter compression spacer being located between said inlet and said three dimensional structure comprising graphene oxide and at least one filter compression spacer located between said outlet and said three dimensional structure comprising graphene oxide and the remaining filter compression spacer being located within said three dimensional structure comprising graphene oxide.
9 . The fluid filter according to claim 1 comprising one or more spacers each said spacer is independently selected from the group consisting of a spring, a ring, or a filter compression spacer.
10 . The fluid filter according to claim 1 comprising one or more compression spacers each said spacer comprising:
a.) an exterior surface and an interior surface said interior surface defining an interior void comprising a top surface area and a bottom surface area;
b.) a plurality of stems protruding from said interior surface, said stems covering a portion of said void's top surface area and a bottom surface area, said stems protruding from about 60% to about 100% to the center of said void.
11 . The fluid filter according to claim 10 , wherein each said filter compression spacer comprises a first group of stems and a second group of stems, said first group of stems being longer than said second group of stems, each group of stems comprising at least three stems.
12 . The fluid filter according to claim 10 , wherein each said filter compression spacer comprises at least six stems said stems having equal lengths or essentially equal lengths.
13 . The fluid filter according to claim 1 , said fluid filter capable of removing at a pressure drop of 7 psi or less:
a.) from a fluid having a cell concentration of 1×10 9 cells per liter, at least 90% of said cells;
b.) up to 1000 ppm water from a fluid comprising water; and/or
c.) from a fluid having a 100 micron particle concentration of 1×10 9 100 micron particles per liter, at least 90% of said 100 micron particles.
14 . The fluid filter according to claim 13 , said fluid filter capable of removing at a pressure drop of 5 psi or less:
a.) from a fluid having a cell concentration of 1×10 9 cells per liter, at least 95% of said cells;
b.) up to 1000 ppm water from a fluid comprising water; and/or
c.) from a fluid having a 100 micron particle concentration of 1×10 9 100 micron particles per liter, at least 95% of said 100 micron particles.
15 . The fluid filter according to claim 13 , said fluid filter capable of removing at a pressure drop of 3 psi or less:
a.) from a fluid having a cell concentration of 1×10 9 cells per liter, at least 99% of said cells;
b.) up to 1000 ppm water from a fluid comprising water; and/or
c.) from a fluid having a 100 micron particle concentration of 1×10 9 100 micron particles per liter, at least 99% of said 100 micron particles.
16 . The fluid filter according to claim 1 , said fluid filter capable of removing at a pressure drop of 1 psi or less:
a.) from a fluid having a cell concentration of 1×10 9 cells per liter, at least 99.9% of said cells and/or removing, from a fluid having a cell concentration of 1 cell per liter, said cell;
b.) up to 1000 ppm water from a fluid comprising water; and/or
c.) from a fluid having a 100 micron particle concentration of 1×10 9 100 micron particle per liter, at least 99.9% of said 100 micron particles and/or removing, from a fluid having a 2 micron charged particle concentration of 1×10 3 two micron charged particles per liter, at least 90% of said two micron charged particles.
17 . The fluid filter according to claim 1 , said fluid filter capable of removing at a pressure drop of from 7 psi to about 0.01 psi:
a.) from a fluid having a cell concentration of 1×10 9 cells per liter, at least 99.9% of said cells and/or removing, from a fluid having a cell concentration of 1 cell per liter, said cell;
b.) up to 1000 ppm water from a fluid comprising water; and/or
c.) from a fluid having a 100 micron particle concentration of 1×10 9 100 micron particle per liter, at least 99.9% of said 100 micron particles and/or removing, from a fluid having a 2 micron charged particle concentration of 1×10 3 two micron charged particles per liter, at least 90% of said two micron charged particles.
18 . The fluid filter according to claim 13 , wherein:
a.) said cells are selected from the group consisting of bacteria, fungi, archaea, protist and mixtures thereof; and
b.) further comprising particulates selected from the group consisting of pollen, seeds, soil, sand, rust, biofilm, charged particles, metal nanoparticles, micelles and emulsions and mixtures thereof.
19 . The fluid filter of claim 13 wherein said fluid is selected from the group consisting of fuel, oil paints, coatings, additives, lubricants, hydraulic fluids, oils and mixtures thereof.